首页> 外文期刊>Journal of the American Society for Mass Spectrometry >Scaling of the resolving power and sensitivity for planar FAIMS and mobility-based discrimination in flow- and field-driven analyzers
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Scaling of the resolving power and sensitivity for planar FAIMS and mobility-based discrimination in flow- and field-driven analyzers

机译:在流动和现场驱动的分析仪中缩放平面FAIMS的分辨能力和灵敏度,并基于移动性进行区分

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Continuing development of the technology and applications of field asymmetric waveform ion mobility spectrometry (FAIMS) calls for better understanding of its limitations and factors that govern them. While key performance metrics such as resolution and ion transmission have been calculated for specific cases employing numerical simulations, the underlying physical trends remained obscure. Here we determine that the resolving power of planar FAIMS scales as the square root of separation time and sensitivity drops exponentially at the rate controlled by absolute ion mobility and several instrument parameters. A strong dependence of ion transmission on mobility severely discriminates against species with higher mobility, presenting particular problems for analyses of complex mixtures. While the time evolution of resolution and sensitivity is virtually identical in existing FAIMS systems using gas flow and proposed devices driven by electric field, the distributions of separation times are not. The inverse correlation between mobility (and thus diffusion speed) and residence time for ions in field-driven FAIMS greatly reduces the mobility-based discrimination and provides much more uniform separations. Under typical operating conditions, the spread of elimination rates for commonly analyzed ions is reduced from > 5 times in flow-driven to 1.6 times in field-driven FAIMS while the difference in resolving power decreases from similar to 60% to similar to 15%.
机译:场不对称波形离子迁移谱技术(FAIMS)的技术和应用的不断发展,要求人们更好地了解其局限性和制约因素。尽管已使用数值模拟针对特定情况计算了关键性能指标(例如分辨率和离子传输率),但基本的物理趋势仍然晦涩难懂。在这里,我们确定平面式FAIMS的分辨能力随着分离时间和灵敏度的平方根成比例地下降,并以绝对离子迁移率和几种仪器参数控制的速率呈指数下降。离子传输对迁移率的强烈依赖性严重区分了迁移率更高的物质,这为分析复杂混合物带来了特殊问题。尽管在使用气流和电场驱动的现有设备的现有FAIMS系统中,分辨率和灵敏度的时间演变几乎相同,但分离时间的分布却不尽相同。离子在电场驱动的FAIMS中的迁移率(以及扩散速度)与停留时间之间的反相关关系大大降低了基于迁移率的区分度,并提供了更为均匀的分离。在典型的工作条件下,通常分析的离子的消除率的分布从流驱动的FAIMS的> 5倍减小到场驱动的FAIMS的1.6倍,而分辨力的差异从大约60%减小到大约15%。

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